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Combined In vivo Optical and µCT Imaging to Monitor Infection, Inflammation, and Bone Anatomy in an Orthopaedic Implant Infection in Mice
Published on: October 16, 2014
Imaging for infection: from visualization of inflammation to visualization of microbes
11 Memorial Sloan Kettering Cancer Center , New York, New York.
Background:
With the development of high-resolution cross-sectional imaging, anatomic identification of most areas of infection has become routine. Imaging a site of infection allows for diagnosis and treatment. In the past, molecular imaging for infection involved mainly the use of radiolabeled leukocytes for functional targeting at infection sites. With the recent development of functional nuclear imaging, bacterial and viral metabolism can also be imaged directly for potential identification of early infection.
Methods:
Review of pertinent English-language literature.
Results:
Cross-sectional imaging is used routinely to identify and treat sources of infection in patients with fever, leukocytosis, or unexplained hemodynamic instability. Although ultrasound is preferred for the identification of biliary or hepatic sepsis, computed tomography (CT) has proved to be accurate for the identification and treatment of intra-abdominal fluid collections and abscesses. Biologic imaging is a non-invasive technique that identifies sites of infection in cases in which no definite abnormality is identified via cross-sectional imaging. This is made possible by imaging the accumulation of radioisotopes that have been attached to white blood cells or glucose. Biologic imaging is useful for the identification of anatomic sites where there is inflammation or high metabolic demand. However, a drawback of biologic imaging is that it is not specific for infection. Techniques that image microbes directly increase the specificity of imaging results significantly and can be used to quantify and track infectious processes. For example, radiolabeling of antimicrobial proteins and antibiotics is one technique that has been demonstrated to identify areas of infection accurately in animals but is not currently being used clinically in humans. With the advent of gene therapy, many researchers are inserting the herpes viral thymidine kinase gene into both viruses and bacteria. This allows for tracking of the infectious process by imaging the accumulation of radiolabeled thymidine analogues.
Conclusion:
This review summarizes standard imaging for infection as it is currently practiced clinically. We will also explore the promising new methods of microbial imaging that are likely to become standards in clinical care in the near future.
Insights
Advanced imaging techniques aid in diagnosing infections. New microbial imaging methods show promise for future clinical applications in identifying and tracking infections.
Area of Science:
- Medical Imaging
- Infectious Disease Diagnostics
- Molecular Imaging
Background:
- Cross-sectional imaging is standard for identifying infection sites, aiding diagnosis and treatment.
- Molecular imaging, including radiolabeled leukocytes, has been used for functional targeting of infections.
- Recent advances in functional nuclear imaging allow direct visualization of microbial metabolism for early infection detection.
Purpose of the Study:
- To review current standard imaging practices for infection diagnosis.
- To explore emerging microbial imaging techniques with future clinical potential.
Main Methods:
- Review of English-language literature on infection imaging.
- Analysis of standard cross-sectional and biologic imaging modalities.
- Evaluation of novel microbial imaging techniques.
Main Results:
- Cross-sectional imaging (ultrasound, CT) is routine for infection sources.
- Biologic imaging identifies inflammation/high metabolic sites but lacks specificity.
- Microbial imaging techniques, like radiolabeled antimicrobials and gene-based imaging, enhance specificity and tracking of infections.
Conclusions:
- Standard imaging practices for infection are summarized.
- Promising new microbial imaging methods are poised to become future clinical standards.
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